A blind detection of a large, complex, Sunyaev--Zel'dovich structure
Abstract
We present an interesting Sunyaev-Zel'dovich (SZ) detection in the first of the Arcminute Microkelvin Imager (AMI) 'blind', degree-square fields to have been observed down to our target sensitivity of 100{\mu}Jy/beam. In follow-up deep pointed observations the SZ effect is detected with a maximum peak decrement greater than 8 \times the thermal noise. No corresponding emission is visible in the ROSAT all-sky X-ray survey and no cluster is evident in the Palomar all-sky optical survey. Compared with existing SZ images of distant clusters, the extent is large (\approx 10') and complex; our analysis favours a model containing two clusters rather than a single cluster. Our Bayesian analysis is currently limited to modelling each cluster with an ellipsoidal or spherical beta-model, which do not do justice to this decrement. Fitting an ellipsoid to the deeper candidate we find the following. (a) Assuming that the Evrard et al. (2002) approximation to Press & Schechter (1974) correctly gives the number density of clusters as a function of mass and redshift, then, in the search area, the formal Bayesian probability ratio of the AMI detection of this cluster is 7.9 \times 10^4:1; alternatively assuming Jenkins et al. (2001) as the true prior, the formal Bayesian probability ratio of detection is 2.1 \times 10^5:1. (b) The cluster mass is MT,200 = 5.5+1.2\times 10^14h-1M\odot. (c) Abandoning a physical model with num- -1.3 70 ber density prior and instead simply modelling the SZ decrement using a phenomenological {\beta}-model of temperature decrement as a function of angular distance, we find a central SZ temperature decrement of -295+36 {\mu}K - this allows for CMB primary anisotropies, receiver -15 noise and radio sources. We are unsure if the cluster system we observe is a merging system or two separate clusters.
Cite
@article{arxiv.1012.4441,
title = {A blind detection of a large, complex, Sunyaev--Zel'dovich structure},
author = {AMI Consortium and : and T. W. Shimwell and R. W. Barker and P. Biddulph and D. Bly and R. C. Boysen and A. R. Brown and M. L. Brown and C. Clementson and M. Crofts and T. L. Culverhouse and J. Czeres and R. J. Dace and M. L. Davies and R. D'Alessandro and P. Doherty and K. Duggan and J. A. Ely and M. Felvus and F. Feroz and W. Flynn and T. M. O. Franzen and J. Geisbusch and R. Genova-Santos and K. J. B. Grainge and W. F. Grainger and D. Hammett and M. P. Hobson and C. M. Holler and N. Hurley-Walker and R. Jilley and T. Kaneko and R. Kneissl and K. Lancaster and A. N. Lasenby and P. J. Marshall and F. Newton and O. Norris and I. Northrop and D. M. Odell and M. Olamaie and Y. C. Perrott J. C. Pober and G. G. Pooley and M. W. Pospieszalski and V. Quy and C. Rodriguez-Gonzalvez and R. D. E. Saunders and A. M. M. Scaife and M. P. Schammel and J. Schofield and P. F. Scott and C. Shaw and H. Smith and D. J. Titterington and M. Velic and E. M. Waldram and S. West and B. A. Wood and G. Yassin and J. T. L. Zwart},
journal= {arXiv preprint arXiv:1012.4441},
year = {2015}
}
Comments
accepted MNRAS. 12 pages, 9 figures